Inertial sensors and muscle electrical signals in human-computer interaction

被引:0
|
作者
Ancans, Armands [1 ]
Rozentals, Artis [1 ]
Nesenbergs, Krisjanis [1 ]
Greitans, Modris [1 ]
机构
[1] Inst Elect & Comp Sci, Dzerbenes 14, Riga, Latvia
来源
2017 6TH INTERNATIONAL CONFERENCE ON INFORMATION AND COMMUNICATION TECHNOLOGY AND ACCESSIBILITY (ICTA) | 2017年
关键词
electromyography (EMG); inertial sensors (IMU); accelerometer; assistive technology; human computer interaction (HCI); head mouse; wearable; ORIENTATION;
D O I
暂无
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
Assistive technology, such as interactive computer applications, has a major role in providing independence to many individuals, but computer interaction using traditional input devices can be challenging for people with disabilities. In this study, a bimodal computer control device is proposed uniting muscle electrical signals and inertial sensor data to provide efficient manual target selection in addition to existing inertial sensor-based solutions for head position tracking and computer cursor control. An embedded system consisting of 9-axis inertial measurement unit and electromyography sensors was proposed and a wireless headband prototype was developed in order to measure system performance and compare it with similar studies. Results show that manual target selection using facial muscle electrical signals instead of automatic dwell time increases the speed of human-computer interaction.
引用
收藏
页数:6
相关论文
共 50 条
  • [31] Cooperativism and Human-Computer Interaction
    Fedosov, Anton
    Lampinen, Airi
    Dillahunt, Tawanna
    Light, Ann
    Cheshire, Coye
    CHI EA '19 EXTENDED ABSTRACTS: EXTENDED ABSTRACTS OF THE 2019 CHI CONFERENCE ON HUMAN FACTORS IN COMPUTING SYSTEMS, 2019,
  • [32] Introduction to Human-Computer Interaction
    Lazar, Jonathan
    Junqueira Barbosa, Simone Diniz
    CHI EA '19 EXTENDED ABSTRACTS: EXTENDED ABSTRACTS OF THE 2019 CHI CONFERENCE ON HUMAN FACTORS IN COMPUTING SYSTEMS, 2019,
  • [33] A Historiography of Human-Computer Interaction
    Petrick, Elizabeth R.
    IEEE ANNALS OF THE HISTORY OF COMPUTING, 2020, 42 (04) : 8 - 23
  • [34] Modelling human-computer interaction
    Koit, M
    SIXTH SCANDINAVIAN CONFERENCE ON ARTIFICIAL INTELLIGENCE, 1997, 40 : 275 - 276
  • [35] Handbook of human-computer interaction
    Noyes, J
    ERGONOMICS, 1999, 42 (04) : 657 - 658
  • [36] A Robust Kalman Algorithm to Facilitate Human-Computer Interaction for People with Cerebral Palsy, Using a New Interface Based on Inertial Sensors
    Raya, Rafael
    Rocon, Eduardo
    Gallego, Juan A.
    Ceres, Ramon
    Pons, Jose L.
    SENSORS, 2012, 12 (03): : 3049 - 3067
  • [37] Human-Computer Interaction Fundamentals
    Paul, Celeste
    ERGONOMICS IN DESIGN, 2011, 19 (02) : 30 - 32
  • [38] HUMAN-COMPUTER INTERACTION IN MANUFACTURING
    ELSHENNAWY, AK
    LEE, CH
    COMPUTERS & INDUSTRIAL ENGINEERING, 1987, 13 (1-4) : 402 - 405
  • [39] EDUCATION AND HUMAN-COMPUTER INTERACTION
    UNDERWOOD, G
    SHADBOLT, N
    BULLETIN OF THE BRITISH PSYCHOLOGICAL SOCIETY, 1985, 38 (NOV): : 366 - 369
  • [40] Encyclopedia of human-computer interaction
    Calvert, Philip
    ONLINE INFORMATION REVIEW, 2006, 30 (05) : 604 - 605